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Neural Network Learning
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Neural Network Learning

1 456 kr

1 456 kr

Tidligere laveste pris:

1 481 kr

På lager

On., 18 juni - ma., 23 juni


Sikker betaling

14 dagers åpent kjøp


Selges og leveres av

Adlibris

Produktbeskrivelse

This book describes recent theoretical advances in the study of artificial neural networks. It explores probabilistic models of supervised learning problems, and addresses the key statistical and computational questions. Research on pattern classification with binary-output networks is surveyed, including a discussion of the relevance of the Vapnik-Chervonenkis dimension, and calculating estimates of the dimension for several neural network models. A model of classification by real-output networks is developed, and the usefulness of classification with a ‘large margin’ is demonstrated. The authors explain the role of scale-sensitive versions of the Vapnik-Chervonenkis dimension in large margin classification, and in real prediction. They also discuss the computational complexity of neural network learning, describing a variety of hardness results, and outlining two efficient constructive learning algorithms. The book is self-contained and is intended to be accessible to researchers and graduate students in computer science, engineering, and mathematics.

Artikkel nr.

70be8e4d-8478-55f1-8599-323814c5f50b

Neural Network Learning

1 456 kr

1 456 kr

Tidligere laveste pris:

1 481 kr

På lager

On., 18 juni - ma., 23 juni


Sikker betaling

14 dagers åpent kjøp


Selges og leveres av

Adlibris